CREG1 ameliorates myocardial fibrosis associated with autophagy activation and Rab7 expression

Insights

Cellular repressor of E1A genes (CREG1) protects heart cells by activating autophagy, a cellular cleanup process. CREG1 deficiency worsens heart damage, while its restoration improves function, offering a potential therapeutic target for heart conditions.

Area of Science:

  • Cardiovascular Biology
  • Cellular Biology
  • Molecular Medicine

Background:

  • Autophagy is crucial for cardiomyocyte survival under stress, but its regulatory mechanisms are unclear.
  • Cellular repressor of E1A genes (CREG1) is a lysosomal protein involved in tissue homeostasis and protection against injury.
  • Understanding CREG1's role in cardiac autophagy is essential for developing new therapeutic strategies.

Purpose of the Study:

  • To investigate the regulatory role of CREG1 in cardiac autophagy.
  • To elucidate the mechanisms by which CREG1 activates autophagy in cardiomyocytes.
  • To assess the therapeutic potential of CREG1 in mitigating cardiac damage.

Main Methods:

  • Generated CREG1 haploinsufficiency (Creg1(+/-)) mouse models.
  • Utilized angiotensin II (Ang II) challenge and recombinant CREG1 protein infusion.
  • Employed primary cardiomyocyte culture with adenoviral CREG1 overexpression and silencing, alongside resveratrol treatment.
  • Analyzed autophagosome markers (LC3II, beclin-1), autophagic flux (p62), lysosomal maturation, and Rab7 expression.

Main Results:

  • CREG1 deficiency aggravated myocardial fibrosis and cardiac damage in response to aging or Ang II.
  • Exogenous CREG1 protein administration reversed cardiac damage.
  • CREG1 deficiency impaired autophagic flux, while CREG1 restoration activated autophagy.
  • CREG1 influenced lysosomal maturation and Rab7 expression, suggesting a role in autophagosome clearance.
  • CREG1 activation of autophagy protected heart tissue against Ang II-induced fibrosis.

Conclusions:

  • CREG1 plays a critical role in activating cardiac autophagy, essential for maintaining heart function under stress.
  • CREG1-mediated autophagy protects against myocardial fibrosis and damage.
  • CREG1's influence on lysosomal pathways suggests a mechanism for its autophagic regulation.
  • Targeting CREG1-induced autophagy presents a promising therapeutic avenue for treating cardiac pathologies.

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